Agent Security Suite vs Agenta

Detailed side-by-side comparison to help you choose the right tool

Agent Security Suite

🟢No Code

Business AI Solutions

Enterprise-grade security platforms that protect, monitor, and govern AI agents across their full lifecycle — from development through production deployment — with unified observability, threat detection, and compliance controls.

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Starting Price

Custom

Agenta

🟡Low Code

Business AI Solutions

All-in-one LLM development platform. Manage prompts, run evaluations, and monitor AI apps in production. Open-source with team collaboration features.

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Starting Price

Free

Feature Comparison

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FeatureAgent Security SuiteAgenta
CategoryBusiness AI SolutionsBusiness AI Solutions
Pricing Plans10 tiers73 tiers
Starting PriceFree
Key Features
  • AI agent discovery and inventory management
  • Runtime behavior monitoring and threat detection
  • Prompt injection and manipulation defense
  • Interactive LLM playground with side-by-side prompt comparison
  • Comprehensive prompt versioning with branching and environments
  • Multi-model support for 50+ LLM providers with custom model integration

Agent Security Suite - Pros & Cons

Pros

  • Broad cross-platform coverage spanning Microsoft Copilot, Salesforce Agentforce, ServiceNow, ChatGPT Enterprise, Google Vertex AI, and Amazon Bedrock in a single control plane
  • Three-layered architecture (Observability, AI-SPM, AIDR) maps cleanly to established security disciplines like CSPM and EDR, shortening the learning curve for existing SecOps teams
  • Active original research program through Zenity Labs, with named vulnerability disclosures like AgentFlayer and PleaseFix that feed detections back into the product
  • Detects shadow AI and citizen-developed agents in low-code environments like Power Platform, which most general-purpose security tools miss entirely
  • Industry-specific framing for financial services, government, and healthcare with compliance-oriented controls suited to regulated deployments
  • Runtime threat detection goes beyond static posture scanning to catch prompt injection, data exfiltration, and anomalous agent behavior in production

Cons

  • Enterprise-only pricing with no published tiers, free trial, or self-serve option — unsuitable for small teams or early-stage experimentation
  • Value depends on the breadth of agent platforms you actually run; single-platform shops may find narrower native tooling cheaper
  • Agentic AI security is a young category, so detection coverage and false-positive rates are still maturing across the industry, Zenity included
  • Requires meaningful integration work and permissioned connections to each agent platform, which can be slow in change-controlled enterprises
  • Overlaps with features now appearing natively in Microsoft Purview, Salesforce Shield, and hyperscaler AI guardrails, forcing buyers to justify a dedicated layer

Agenta - Pros & Cons

Pros

  • Open-source foundation with MIT licensing providing complete control and avoiding vendor lock-in
  • Unified platform combining prompt management, evaluation, and observability in integrated workflows
  • Enterprise-grade security with SOC2 Type I certification and comprehensive data protection
  • Collaborative features enabling cross-functional teams to work together effectively on LLM projects
  • Self-hosting options available for organizations requiring maximum data privacy and control
  • Comprehensive evaluation framework with both automated and human evaluation capabilities
  • Active open-source community with regular updates and community-driven improvements
  • Full API/UI parity enabling seamless integration into existing development workflows

Cons

  • Self-hosted deployments require meaningful DevOps effort to run, scale, and maintain compared to pure SaaS alternatives
  • Ecosystem and community are smaller than established competitors like Langfuse or Weights & Biases, so third-party tutorials are limited
  • Pro-to-Business pricing jump ($49 to $399/month) is steep for mid-sized teams that outgrow the hobby limits
  • LLM-as-a-judge and automated evaluators still require careful calibration to produce reliable signals on domain-specific tasks
  • Deep integrations with niche agent frameworks or custom orchestration may require manual SDK instrumentation

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🔒 Security & Compliance Comparison

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Security FeatureAgent Security SuiteAgenta
SOC2✅ Yes
GDPR✅ Yes
HIPAA❌ No
SSO✅ Yes
Self-Hosted✅ Yes
On-Prem
RBAC
Audit Log
Open Source✅ Yes
API Key Auth✅ Yes
Encryption at Rest
Encryption in Transit
Data Residency
Data Retention
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